Department of Physics and Astronomy, University of Sheffield, Sheffield, United Kingdom.
Phys Rev Lett. 2013 Jan 18;110(3):037402. doi: 10.1103/PhysRevLett.110.037402. Epub 2013 Jan 14.
An in-plane spin-photon interface is essential for the integration of quantum dot spins with optical circuits. The optical dipole of a quantum dot lies in the plane and the spin is optically accessed via circularly polarized selection rules. Hence, a single waveguide, which can transport only one in-plane linear polarization component, cannot communicate the spin state between two points on a chip. To overcome this issue, we introduce a spin-photon interface based on two orthogonal waveguides, where the polarization emitted by a quantum dot is mapped to a path-encoded photon. We demonstrate operation by deducing the spin using the interference of in-plane photons. A second device directly maps right and left circular polarizations to antiparallel waveguides, surprising for a nonchiral structure but consistent with an off-center dot.
平面内自旋-光子接口对于将量子点自旋与光学电路集成至关重要。量子点的光学偶极子位于平面内,并且通过圆偏振选择定则来光学访问自旋。因此,单个波导,其只能传输一个平面内的线性偏振分量,不能在芯片上的两个点之间传递自旋状态。为了解决这个问题,我们引入了基于两个正交波导的自旋-光子接口,其中量子点发射的偏振被映射到路径编码光子上。我们通过使用平面内光子的干涉来推断自旋,从而证明了该接口的运行。第二个设备将右圆偏振和左圆偏振直接映射到相反的波导,这对于非手性结构来说很奇怪,但与偏离中心的量子点一致。